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I have a page index.php that uses a modal to upload files. After those have uploaded I use the following to update my database and load in the new images to a list.

$('#sortableImages').load('../includes/sortImages.php?edit=' + edit);

Executes:

<script type="text/javascript">
$(document).ready(function(){ 

    $(function() {
        $("#sortableImages ul").sortable({ 
            opacity: 0.6, cursor: 'move', update: function() {
                var order = $(this).sortable("serialize") + '&action=updateRecordsListings';
                $.post("../albumUploader/queries/sort.php", order);
            }
         });
    });

});
</script>
echo "<ul class='revisionList'>";

                while($row = mysql_fetch_array($result, MYSQL_ASSOC)) {
                    $sortImageName = $row['OrgImageName']; 
                    $sortPath = "../data/gallery/" . $getGalleryID . "/images/album/" . $sortImageName;
                    echo "<li class='sortPhotos' id='recordsArray_{$row['id']}' >";
                    echo '<img src="'. $sortPath .'"/>';
                    echo "</li>";
                }

                echo "</ul>";

The images populate in a div #sortableImages on the index page. However it seems that I lose my method of sortable() from the js file that was originally loaded in the index.php or after the ajax request it's not reading the js. What am I missing here?

Thanks a million.

share|improve this question
    
what do you mean by lose? "it's not reading the js," please clarify. –  FlavorScape Jun 28 '12 at 0:38
    
correct, sorry little 'loose' with my terminology. It's appears after the request, the newly populated list isn't relating to the ui.sortable.js -- thanks –  Bungdaddy Jun 28 '12 at 0:40
    
Is the snippet with sortable in index.php or the ajax page? –  Cranio Jun 28 '12 at 0:41
    
@Cranio the snippet with the sortable is in the ajax page –  Bungdaddy Jun 28 '12 at 0:58

2 Answers 2

up vote 0 down vote accepted

When you load script from a remote page using ajax, it is important to realize that the ready event has already occured in page you are loading into.

This means that code wrapped in $(function(){}) will fire as soon as it is received. If that code preceeds the html it refers to, it will not find that html, as it doesn't exist yet.

If you move the same code below the html it refers to, it will fire after the html exists and therefore will find it.

EDIT: My answer presumes that all the code shown after "Executes:" in OP is contained in remote page

share|improve this answer
    
Good beginning, I think the conclusion is wrong. –  Cranio Jun 28 '12 at 0:48
1  
Nope. Ready is not fired until the DOM IS READY. –  FlavorScape Jun 28 '12 at 0:48
    
Exactly, that's what I meant. –  Cranio Jun 28 '12 at 0:48
1  
this post still makes me laugh...2 guys slamming my answer, which worked out just as I said it would by rearanging load order of html/script –  charlietfl Jun 28 '12 at 16:03
1  
@Cranio please note this indeed worked, so before you go downvoting, and slamming other answers...please do your homework and not vote based on incorrect assumptions –  charlietfl Jun 28 '12 at 16:06

You have no handler for the result of the sort.php. Invoking this will only load the data into cache.

You need a complete handler function to refresh the data, not to mention add it to the dom. You should clarify your question and make it obvious that those are two different pages.

$.post("../albumUploader/queries/sort.php", order).complete = func...

share|improve this answer
    
my bad, thought the .load(../includes/sortImages.php?edit=' + edit) was clear that was another page, will definitely be more clear in future. Thanks for your answer. I'll have to look into implementing a complete handler. –  Bungdaddy Jun 28 '12 at 1:05
1  
@ FlavorScape now that the code location has been clarifed, you can remove your downvote which was based on false assumptions on your part –  charlietfl Jun 28 '12 at 1:16

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